Piirainen Mari A, Boer Harry, de Ruijter Jorg C, Frey Alexander D
Department of Biotechnology and Chemical Technology, Aalto University, Kemistintie 1, 02150, Espoo, Finland.
VTT Technical research centre of Finland, Espoo, Finland.
Glycoconj J. 2016 Apr;33(2):189-99. doi: 10.1007/s10719-016-9656-4. Epub 2016 Mar 16.
N-glycosylation is an important feature of therapeutic and other industrially relevant proteins, and engineering of the N-glycosylation pathway provides opportunities for developing alternative, non-mammalian glycoprotein expression systems. Among yeasts, Saccharomyces cerevisiae is the most established host organism used in therapeutic protein production and therefore an interesting host for glycoengineering. In this work, we present further improvements in the humanization of the N-glycans in a recently developed S. cerevisiae strain. In this strain, a tailored trimannosyl lipid-linked oligosaccharide is formed and transferred to the protein, followed by complex-type glycan formation by Golgi apparatus-targeted human N-acetylglucosamine transferases. We improved the glycan pattern of the glycoengineered strain both in terms of glycoform homogeneity and the efficiency of complex-type glycosylation. Most of the interfering structures present in the glycoengineered strain were eliminated by deletion of the MNN1 gene. The relative abundance of the complex-type target glycan was increased by the expression of a UDP-N-acetylglucosamine transporter from Kluyveromyces lactis, indicating that the import of UDP-N-acetylglucosamine into the Golgi apparatus is a limiting factor for efficient complex-type N-glycosylation in S. cerevisiae. By a combination of the MNN1 deletion and the expression of a UDP-N-acetylglucosamine transporter, a strain forming complex-type glycans with a significantly improved homogeneity was obtained. Our results represent a further step towards obtaining humanized glycoproteins with a high homogeneity in S. cerevisiae.
N-糖基化是治疗性及其他与工业相关蛋白质的一个重要特征,对N-糖基化途径进行工程改造为开发替代性的非哺乳动物糖蛋白表达系统提供了机会。在酵母中,酿酒酵母是用于生产治疗性蛋白质的最成熟宿主生物,因此是糖基工程研究的一个有趣宿主。在这项工作中,我们展示了对最近开发的酿酒酵母菌株中N-聚糖人源化的进一步改进。在该菌株中,一种定制的三甘露糖基脂连接寡糖形成并转移至蛋白质上,随后由靶向高尔基体的人N-乙酰葡糖胺转移酶形成复合型聚糖。我们在糖型同质性和复合型糖基化效率方面均改善了糖基工程菌株的聚糖模式。通过缺失MNN1基因,消除了糖基工程菌株中存在的大多数干扰性结构。通过表达乳酸克鲁维酵母的UDP-N-乙酰葡糖胺转运蛋白,增加了复合型目标聚糖的相对丰度,这表明UDP-N-乙酰葡糖胺向高尔基体的转运是酿酒酵母中高效复合型N-糖基化的一个限制因素。通过联合缺失MNN1基因和表达UDP-N-乙酰葡糖胺转运蛋白,获得了一种形成具有显著改善的同质性的复合型聚糖的菌株。我们的结果朝着在酿酒酵母中获得具有高同质性的人源化糖蛋白又迈进了一步。